Spontaneous Lipid Nanodisc Fomation by Amphiphilic Polymethacrylate Copolymers

化学 脂质双层 纳米圆盘 聚合物 小泡 两亲性 生物物理学 双层 差示扫描量热法 模型脂质双层 共聚物 脂质双层相行为 有机化学 生物化学 物理 热力学 生物
作者
Kazuma Yasuhara,Jin Arakida,Thirupathi Ravula,Sudheer Kumar Ramadugu,Bikash R. Sahoo,Jun-ichi Kikuchi,Ayyalusamy Ramamoorthy
出处
期刊:Journal of the American Chemical Society [American Chemical Society]
卷期号:139 (51): 18657-18663 被引量:109
标识
DOI:10.1021/jacs.7b10591
摘要

There is a growing interest in the use of lipid bilayer nanodiscs for various biochemical and biomedical applications. Among the different types of nanodiscs, the unique features of synthetic polymer-based nanodiscs have attracted additional interest. A styrene–maleic acid (SMA) copolymer demonstrated to form lipid nanodiscs has been used for structural biology related studies on membrane proteins. However, the application of SMA polymer based lipid nanodiscs is limited because of the strong absorption of the aromatic group interfering with various experimental measurements. Thus, there is considerable interest in the development of other molecular frameworks for the formation of polymer-based lipid nanodiscs. In this study, we report the first synthesis and characterization of a library of polymethacrylate random copolymers as alternatives to SMA polymer. In addition, we experimentally demonstrate the ability of these polymers to form lipid bilayer nanodiscs through the fragmentation of lipid vesicles by means of light scattering, electron microscopy, differential scanning calorimetry, and solution and solid-state NMR experiments. We further demonstrate a unique application of the newly developed polymer for kinetics and structural characterization of the aggregation of human islet amyloid polypeptide (also known as amylin) within the lipid bilayer of the polymer nanodiscs using thioflavin-T-based fluorescence and circular dichroism experiments. Our results demonstrate that the reported new styrene-free polymers can be used in high-throughput biophysical experiments. Therefore, we expect that the new polymer nanodiscs will be valuable in the structural studies of amyloid proteins and membrane proteins by various biophysical techniques.

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